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Biomedical subjects

I Brook

Publications and source records attributed to I Brook.

At least 73 records · Page 4Linked to original sources

Superficial suppurative thrombophlebitis in children, caused by anaerobic bacteria.

OBJECTIVE: The purpose of this study was to present the microbiology and clinical features of six children with superficial suppurative thrombophlebitis (SST) caused by anaerobic bacteria. METHODS: A retrospective review of microbiological and clinical data was undertaken. RESULTS: Anaerobic bacteria alone were recovered in four instances, and they were mixed with facultative bacteria in two. There were 12 bacterial isolates (10 anaerobic and 2 facultatives). The bacteria were Peptostreptococcus species (four isolates), Prevotella species (three), and one isolate each of Fusobacterium nucleatum, Propionibacterium acnes, Staphylococcus aureus, and Staphylococcus epidermidis. SST at an intravenous infusion site developed in all but one patient. One patient sustained trauma to the leg, and cellulitis developed. Anaerobes of oral origin (Prevotella and Fusobacterium species) were recovered in scalp vein SST, and of gastrointestinal origin (Bacteroides fragilis) in a lower extremity SST. CONCLUSION: This study highlights the potential importance of anaerobic bacteria in children with SST.

Anti-Bacterial Agents↗

Microbiology of common infections in the upper respiratory tract.

The management of upper respiratory tract infections has become more difficult because of the recent increase in the number of penicillin-resistant organisms. The bacteria that predominate in otitis media and sinusitis can resist penicillin through the production of the enzyme beta-lactamase (Haemophilus influenzae and Moraxella catarrhalis in acute infections and Staphylococcus aureus and Prevotella and Fusobacteria spp in chronic infections) or through changes in penicillin-binding sites (Streptococcus pneumoniae). beta-lactamase-producing bacteria can express their pathogenicity directly through their ability to cause infections and indirectly by production of the enzyme, thus protecting penicillin-susceptible pathogens from penicillins. This phenomenon may explain penicillin's failure in the treatment of Group A beta-hemolytic streptococcal (GABHS) tonsillitis. An additional cause for penicillin failure is the absence among the normal tonsillar bacterial flora of streptococcal species that are capable of interfering with the growth of GABHS. Proper use of antimicrobial therapy, including those therapies that are effective against penicillin-resistant bacteria, is the cornerstone of management of upper respiratory tract infections.

Adult↗

Sinusitis in neurologically impaired children.

The microbiologic features of infected sinus aspirates in nine children with neurologic impairment were studied. Anaerobic bacteria, always mixed with aerobic and facultative bacteria, were isolated in 6 (67%) aspirates and aerobic bacteria only in 3 (33%). There were 24 bacterial isolates, 12 aerobic or facultative and 12 anaerobic. The predominant aerobic isolates were Klebsiella pneumoniae, Escherichia coli, and Staphylococcus aureus (2 each) and Proteus mirabilis, Pseudomonas aeruginosa, Haemophilus influenzae, Moraxella catarrhalis, and Streptococcus pneumoniae (1 each). The predominant anaerobes were Prevotella sp. (5), Peptostreptococcus sp. (4), Fusobacterium nucleatum (2), and Bacteroides fragilis (1). Beta-lactamase-producing bacteria were isolated from 8 (89%) patients. Organisms similar to those recovered from the sinuses were also isolated from tracheostomy site and gastrostomy wound aspirates in five of seven instances. This study demonstrates the uniqueness of the microbiologic features of sinusitis in neurologically impaired children, in which, in addition to the organisms known to cause infection in children without neurologic impairment, facultative and anaerobic gram-negative organisms that can colonize other body sites are predominant.

Adolescent↗

Aerobic and anaerobic microbiology of infection after trauma.

Clinical and laboratory data from 1973 to 1988 were retrospectively reviewed to study the microbiology of infection following trauma. A total of 368 specimens obtained from 340 trauma patients showed bacterial growth. The traumas included lacerations (163), blunt trauma (76), penetrating trauma (65), bites (20), and open fractures (10). Anaerobic bacteria only were isolated in 119 (32%) specimens, aerobic bacteria only in 58 (16%), and mixed aerobic-anaerobic flora in 191 (52%). A total of 444 anaerobic (1.2 isolates per specimen) and 267 aerobic or facultative (0.7 per specimen) were recovered. The predominant anaerobic bacteria included Bacteroides fragilis group (119 isolates), Peptostreptococcus spp (113), Clostridium spp (78), Prevotella spp (58), and Fusobacterium spp (23). The predominant aerobic bacteria included Escherichia coli (83), Staphylococcus aureus (61), Streptococcus pyogenes (27), Streptococcus group D (16), and Klebsiella pneumoniae (16). The types of infections included abscesses (109), bacteremia (32), bites (13), empyema (10), osteomyelitis (21), peritonitis (52), thrombophlebitis (12), and wounds (116, including posttraumatic wounds, cellulitis, stump wound, decubitus ulcers, myositis, and fasciitis). S. aureus was isolated at all sites. However, organisms of the oropharyngeal flora predominated in infections that originated from that location (ie, head and neck wounds, and abscesses or bites), and those of the gastrointestinal flora predominated in infections that originated from that site (ie, peritonitis, abdominal abscesses, decubitus ulcers). This study showed the polymicrobial nature of many infections that follow trauma.

Adolescent↗

Aerobic and anaerobic microbiology of chronic venous ulcers.

BACKGROUND: The role of bacteria in the pathogenesis of chronic venous leg ulcers (CVLU) is unclear. The objective of the study was to establish the aerobic and anaerobic bacteriology of CVLU. METHODS: A retrospective review was carried out of the clinical and microbiological laboratory records obtained from patients with CVLU. Microorganisms were grown from 43 specimens obtained from 41 patients. RESULTS: Aerobic or facultative bacteria alone were present in 18 (42%) specimens, anaerobic bacteria only in three (7%), and mixed aerobic-anaerobic flora in 22 (51%). In total, there were 97 isolates, 64 aerobic or facultative and 33 anaerobic, an average of 2.3 isolates per specimen (1.5 aerobes and 0.8 anaerobes). The predominant aerobic organisms were Staphylococcus aureus (26 isolates), group D streptococci (5), and Escherichia coli(5). The predominant anaerobes were Peptostreptococcus spp. (15), Bacteroides fragilis group (6), Propionibacterium acnes (4), and Prevotella spp. (3). CONCLUSIONS: CVLU have a polymicrobial aerobic-anaerobic flora.

Aged↗

Microbiology of perianal cellulitis in children: comparison of skin swabs and needle aspiration.

OBJECTIVE: To establish the aerobic and anaerobic microbiology of perianal cellulitis in children, comparing skin swab and needle aspirate methodology. METHOD: Swabs of involved skin and needle aspirates of cellulitis were studied for aerobic and anaerobic bacteria. RESULTS: Specimens obtained from 10 patients with perianal cellulitis showed bacterial growth. Polymicrobial aerobic-anaerobic flora was found in all skin surface cultures, where the predominate isolates were Peptostreptococcus spp., Escherichia coli, and alpha hemolytic streptococci. The number of isolates in needle aspirates varied between one and two. The predominant ones were E. coli (3), Peptostreptococcus spp. (3), Staphylococcus aureus (2), and Bacteroides fragilis group (2). Complete or partial concordance in microbiology between skin swabs and needle aspirates was present in six instances. In four instances, isolates recovered from needle aspirates were not isolated from the skin surface. CONCLUSIONS: This study demonstrates the diversity of aerobic and anaerobic organisms isolated from perianal cellulitis, and the superiority of needle aspirates in establishing the microbiology of the infection.

Anus Diseases↗

Aerobic and anaerobic bacteriology of otorrhea associated with tympanostomy tubes in children.

The microbiology of in 55 ear aspirates obtained from 34 children with chronic otorrhea was studied. Aspiration of the middle ear exudate was done immediately following removal of tympanostomy tube (TT). The middle ear aspirates and swab specimens of the external auditory canals were cultured for aerobic and anaerobic bacteria. Sixty-five isolates were recovered only from the middle ears, 73 only from the external ear canals, and 73 were present at both sites. Analysis of the 138 middle ear isolates demonstrated the recovery of aerobic bacteria only in 28 patients (50%), anaerobes only in seven (13%), and both aerobes and anaerobes in 20 (36%). There were 77 aerobic and 61 anaerobic isolates. Commonly recovered aerobes were Pseudomonas aeruginosa (17 isolates), Staphylococcus aureus (11), Proteus sp. (7), Moraxella catarrhalis (6), Klebsiella pneumoniae (5) and non-typable Haemophilus influenzae (5). Commonly isolated anaerobes were Peptostreptococcus sp. (25 isolates), Prevotella sp. (10), Bacteroides sp. (8) and Fusobacterium sp. (6). Pseudomonas aeruginosa and S. aureus were more often isolated in children older then 6 years. These findings demonstrate the polymicrobial bacteriology of TT-related otorrhea in children. Specimens collected from the external auditory canals can be misleading. Reliable information can be obtained from the ear exudes when collected through the TT or through the open perforation after their removal.

Bacteria, Aerobic↗

Microbiology of cervical lymphadenitis in adults.

The microbiology of needle aspirates from 40 inflamed cervical lymph glands was studied for aerobic and anaerobic bacteria, fungi and mycobacteria. Forty-two bacterial, 11 mycobacterial and six fungal isolates were isolated. Aerobic bacteria only were recovered in 11 (27.5%), anaerobes alone in five (12.5%) and mixed aerobic and anaerobic bacteria in seven (17.5%). Mycobacterium sp. were recovered in 11 (27.5%) and fungi in six (15%). The recovery of anaerobes was associated with dental infection. Eighteen aerobic bacteria were isolated and the predominant ones were Staphylococcus aureus (eight isolates) and group A streptococci (four). Twenty-four anaerobic bacteria were recovered and the predominant ones were: Prevotella sp. (six), Peptostreptococcus sp. (five), Propionibacterium acnes (four) and Fusobacterium sp. (three). These findings demonstrate the role of anaerobic organisms in cervical lymphadenitis and the need to culture aspirated material from the glands for both aerobic and anaerobic microorganisms.

Adolescent↗

Aerobic and anaerobic microbiology of retroperitoneal abscesses.

The aerobic and anaerobic microbiology of various types of retroperitoneal abscesses was studied by review of the clinical and laboratory data for 161 patients treated between 1974 and 1990 for such abscesses. These included 109 anterior, 8 posterior, 21 retrofascial, and 23 pelvic retroperitoneal abscesses. A total of 472 organisms (2.9 isolates/specimen)--204 aerobic and facultative (1.3/specimen), and 268 anaerobic (1.7/specimen)--were recovered. Aerobes only were recovered from 34 abscesses (21%), anaerobes only from 34 (21%), and mixed aerobic and anaerobic bacteria from 93 (58%). Polymicrobial infection was present in 132 patients (82%). The predominant aerobic and facultative isolates were Escherichia coli (60 isolates), Klebsiella pneumoniae (20), Streptococcus group D (19), and Staphylococcus aureus (11). The predominant anaerobes were Peptostreptococcus species (95 isolates), Bacteroides fragilis group (66), Prevotella species (22), and Clostridium species (22). The number of anaerobes per site always was greater than the number of aerobic or facultative organisms and was especially high in pelvic abscesses. The number of aerobic and facultative organisms was especially high in pancreatic abscesses. These data highlight the polymicrobial aerobic-anaerobic nature of retroperitoneal abscesses.

Abdominal Abscess↗

Bacterial interference in the nasopharynx following antimicrobial therapy of acute otitis media.

The effect on the nasopharyngeal bacterial flora of therapy for 10 days with co-amoxiclav or cefprozil was studied in 50 children with acute otitis media. Before therapy, potential pathogens (Streptococcus pneumoniae, Haemophilus influenzae and Moraxella catarrhalis) were isolated in 14 (56%) of those treated with co-amoxiclav and 15 (60%) of those treated with cefprozil. Following therapy, the reduction in the number of these pathogens was the same in the two groups. However, differences between the groups were noted in the recovery of organisms with interfering capability, namely alpha-haemolytic streptococci, Peptostreptococcus anaerobius and Prevotella melaninogenica. Fifty interfering organisms were recovered from each group before therapy. After therapy with co-amoxiclav or cefprozil their number declined to 11 and 42, respectively (P< 0.001).

Amoxicillin-Potassium Clavulanate Combination↗

Microbial factors leading to recurrent upper respiratory tract infections.

The treatment or prophylaxis of upper respiratory tract infections such as otitis media, sinusitis and tonsillitis with penicillins can generate bacterial resistance caused by production of beta-lactamase or changes in the penicillin-binding proteins. This resistance can spread in the community even to untreated individuals. The prevalence of resistant organisms tends to increase in the winter months. Beta-lactamase-producing bacteria may interfere with the eradication of penicillin-susceptible organisms and may account for substantial numbers of therapeutic failures among cases of otitis media, sinusitis and tonsillitis. The presence of normal flora that possess interfering capabilities against potential pathogens is beneficial to the host. Such flora may enhance recovery and prevent infections of the tonsils by group A beta-hemolytic streptococci. Therapeutic use of antimicrobial agents that preserve the normal flora but overcome penicillin-susceptible or -resistant pathogens may enhance recovery from upper respiratory tract infections.

Child↗

Microbiology of liver and spleen abscesses.

To study the aerobic and anaerobic microbiology of liver and spleen abscesses and correlate the results with predisposing factors, potential causes and routes of infection, clinical and laboratory data of 48 patients with liver abscesses and 29 with spleen abscesses treated between 1970 and 1990 were reviewed retrospectively. In liver abscesses, a total of 116 isolates (2.4 isolates/specimen) was obtained; 43 were aerobic and facultative species (0.9 isolates/specimen) and 73 were anaerobic species or microaerophilic streptococci (1.5 isolates/specimen). Aerobic bacteria only were isolated from 12 (25%) abscesses, anaerobic bacteria only from eight (17%), and mixed aerobic and anaerobic bacteria from 28 (58%); polymicrobial infection was present in 38 (79%). The predominant aerobic and facultative isolates were Escherichia coli (11 isolates), Streptococcus group D (8), Klebsiella pneumoniae (5) and Staphylococcus aureus (4). The predominant anaerobes were Peptostreptococcus spp. (18 isolates), Bacteroides spp. (13), Fusobacterium spp. (10), Clostridium spp. (10) and Prevotella spp. (4). There were 12 isolates of micro-aerophilic streptococci. S. aureus and beta-haemolytic streptococci were associated with trauma; Streptococcus group D, K. pneumoniae and Clostridium spp. with biliary disease; and Bacteroides spp. and Clostridium spp. with colonic disease. In splenic abscesses, a total of 56 isolates (1.9 isolates/specimen) was obtained; 23 were aerobic and facultative species (0.8 isolates/specimen), 31 were anaerobic species or micro-aerophilic streptococci (1.1 isolates/specimen) and two were Candida albicans. Aerobic bacteria only were isolated from nine (31%) abscesses, anaerobic bacteria from eight (28%), mixed aerobic and anaerobic bacteria from 10 (34%) and C. albicans in two (7%); polymicrobial infection was present in 16 (55%). The predominant aerobic and facultative isolates were E. coli (5 isolates), Proteus mirabilis (3), Streptococcus group D (3), K. pneumoniae (3) and S. aureus (4). The predominant anaerobes were Peptostreptococcus spp. (11 isolates), Bacteroides spp. (5), Fusobacterium spp. (3) and Clostridium spp. (3). S. aureus, K. pneumoniae and Streptococcus group D were associated with endocarditis, E. coli with urinary tract and abdominal infection, Bacteroides spp. and Clostridium spp. with abdominal infection and Fusobacterium spp. with respiratory infection.

Abscess↗

Aerobic and anaerobic microbiology of infections after trauma in children.

OBJECTIVE: To review the recovery of aerobic and anaerobic bacteria from infections after trauma in children over a 20 year period. METHODS: Only specimens that were studied for both aerobic and anaerobic bacteria were included in the analysis. They were collected from seven separate centres in which the microbiology laboratories only accepted specimens that were properly collected without contamination and were submitted in appropriate transport media. Anaerobes and aerobic bacteria were cultured and identified using standard techniques. Clinical records were reviewed to identify post-trauma patients. RESULTS: From 1974 to 1994, 175 specimens obtained from 166 children with trauma showed bacterial growth. The trauma included blunt trauma (71), lacerations (48), bites (42), and open fractures (5). Anaerobic bacteria only were isolated in 38 specimens (22%), aerobic bacteria only in 51 (29%), and mixed aerobic-anaerobic flora in 86 (49%); 363 anaerobic (2.1/specimen) and 158 aerobic or facultative isolates (0.9/specimen) were recovered. The predominant anaerobic bacteria included Peptostreptococcus spp (115 isolates), Prevotella spp (68), Fusobacterium spp (52), B fragilis group (42), and Clostridium spp (21). The predominant aerobic bacteria included Staph aureus (51), E coli (13), Ps aeruginosa (12), Str pyogenes (11) and Klebsiella pneumoniae (9). Principal infections were: abscesses (52), bacteraemia (3), pulmonary infections (30, including aspiration pneumonia, tracheostomy associated pneumonia, empyema, and ventilator associated pneumonia), wounds (36, including cellulitis, post-traumatic wounds, decubitus ulcers, myositis, gastrostomy and tracheostomy site wounds, and fasciitis), bites (42, including 23 animal and 19 human), peritonitis (4), osteomyelitis (5), and sinusitis (3). Staph aureus and Str pyogenes were isolated at all sites. However, organisms of the oropharyngeal flora predominated in infections that originated from head and neck wounds and abscesses, and bites, and those from the gastrointestinal tract predominated in infections that originated from peritonitis, abdominal abscesses, and decubitus ulcers. CONCLUSIONS: Many infections that follow trauma in children involve multiple organisms.

Abscess↗

Recovery of anaerobic bacteria from a post-traumatic nasal septal abscess. A report of two cases.

This report presents 2 children (boys, 11 and 9 years old) who had post-traumatic nasal septal abscesses. Cultures for aerobic and anaerobic bacteria revealed Peptostreptococcuus magnus and a beta-lactamase-producing Prevotella intermedia in the first patient, and Peptostreptococcus anaerobius, Streptococcus intermedius, and Prevotella melaninogenica in the second patient. Anaerobic bacteria may play a role in nasal septal abscesses.

Abscess↗

Pharmacodynamics and pharmacokinetics of spiramycin and their clinical significance.

The absolute bioavailability of oral spiramycin is generally within the range of 30 to 40%. After a 1 g oral dose, the maximum serum drug concentration was found to be within the range 0.4 to 1.4 mg/L. The tissue distribution of spiramycin is extensive. The volume of distribution is in excess of 300 L, and concentrations achieved in bone, muscle, respiratory tract and saliva exceed those found in serum. The intracellular penetration of spiramycin is also rapid and extensive, with the concentrations in alveolar macrophages 10 to 20 times greater than simultaneous serum concentrations. Spiramycin is less metabolised than some of the other macrolides. The renal excretion of spiramycin is low, with 4 to 20% of the dose being excreted by this route. High concentrations of spiramycin are achieved in bile, which is an important route of elimination. The serum elimination half-life of spiramycin is between 6.2 and 7.7 hours. Of significance to clinicians may be the finding that spiramycin is highly concentrated in the respiratory tract and other tissues and macrophages. The post-antibiotic effect of spiramycin is significant and this effect is more prolonged than that of erythromycin against Staphylococcus aureus. Spiramycin has also been shown to greatly reduce the capacity of strains of Gram-positive cocci to adhere to human buccal cells.

Animals↗

Microbiology of otitis externa.

Microbiologic and clinical data from 26 patients with otitis externa were prospectively evaluated. Specimens were processed for aerobic and anaerobic bacteria. Bacterial growth was noted in 23 specimens. A total of 33 aerobic and 2 anaerobic bacteria were recovered. Aerobic bacteria only were isolated in 21 (91%) patients, anaerobic bacteria only in 1 (4%), and mixed aerobic and anaerobic bacteria in 1 (4%). The most common isolates were Pseudomonas aeruginosa (14 instances), Staphylococcus aureus (7), Acinetobacter calcoaceticus (2), Proteus mirabilis (2), Enterococcus faecalis (2), Bacteroides fragilis (1), and Peptostreptococcus magnus (1). One isolate was recovered in 13 (57%) patients, 2 isolates in 8 (35%), and 3 isolates in 2 (9%). These data illustrate the polymicrobial nature of otitis externa in about half of the patients and the role of anaerobic bacteria in 8% of them. Further studies are warranted to evaluate the therapeutic implications of these findings.

Adolescent↗